材料科学
物理不可克隆功能
荧光
加密
计算机科学
认证(法律)
纳米技术
可读性
光致发光
分层数据库模型
生物系统
嵌入
光电子学
人工智能
光刻胶
密码学
模式识别(心理学)
印记(心理学)
产品(数学)
作者
Chen Zhao,Lang Wang,Luting Zhu,Aoming Liang,Tianyi Hang,Yan Mi,Sisi Yan,Liaoyong Wen
摘要
ABSTRACT Secure and user‐friendly anti‐counterfeiting technologies are critical for safeguarding products in modern society. However, achieving a synergy between high‐level encryption and efficient readability remains a significant challenge. Here, we present an all‐in‐one multimodal optical anti‐counterfeiting strategy based on fluorescent hierarchical structures through a sequential imprinting process. The resulting structures exhibit an intact macroscopic contour while retaining randomly distributed microscopic defects. Macroscopically, hidden photoluminescent (PL) patterns revealed by UV irradiation, together with angle‐dependent nano‐ and micro‐structural color patterns observed under daylight, enable direct visual decoding. Microscopically, random fluorescent inks and structural defects generate two independent physical unclonable functions under UV and daylight, whose encryption capacity is equivalent to the product of two independent keys, providing ultrahigh security. Moreover, the hierarchical structure in multimodal optical anti‐counterfeiting enhances PL emission, provides robust friction resistance, and improves hydrophobicity, collectively enabling reliable performance in practical applications. Using a painting as a platform, we demonstrate a feasible authentication strategy for next‐generation anti‐counterfeiting.
科研通智能强力驱动
Strongly Powered by AbleSci AI